Heat and mass transfer of MHD Jeffrey nanofluid flow through a porous media past an inclined plate with chemical reaction, radiation, and Soret effects

IF 2.8 Q2 THERMODYNAMICS Heat Transfer Pub Date : 2022-10-09 DOI:10.1002/htj.22735
A. Haritha, B. Vishali, C. Venkata Lakshmi
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Abstract

This paper investigates the heat and mass transfer of an unsteady, magnetohydrodynamic incompressible water-based nanofluid (Cu and TiO2) flow over a stretching sheet in a transverse magnetic field with thermal radiation Soret effects in the presence of heat source and chemical reaction. The governing differential equations are transformed into a set of nonlinear ordinary differential equations and solved using a regular perturbation technique with appropriate boundary conditions for various physical parameters. The effects of different physical parameters on the dimensionless velocity, temperature, and concentration profiles are depicted graphically and analyzed in detail. Finally, numerical values of the physical quantities, such as the local skin-friction coefficient, the Nusselt number, and the Sherwood number, are presented in tabular form. It is concluded that the resultant velocity reduces with increasing Jeffrey parameter and magnetic field parameter. Results describe that the velocity and temperature diminish with enhancing the thermal radiation. Both velocity and concentration are enhanced with increases of the Soret parameter. Also, it is noticed that the solutal boundary layer thickness decreases with an increase in chemical reaction parameters. This is because chemical molecular diffusivity reduces for higher values of chemical reaction parameter. Also, water-based TiO2 nanofluids possess higher velocity than water-based Cu nanofluids. Comparisons with previously published work performed and the results are found to be in excellent agreement. This fluid flow model has several industrial applications in the field of chemical, polymer, medical science, and so forth.

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MHD Jeffrey纳米流体在化学反应、辐射和Soret效应下通过倾斜板的多孔介质的传热传质
本文研究了在热源和化学反应存在的情况下,具有热辐射Soret效应的横向磁场中,不稳定、磁流体动力学不可压缩的水基纳米流体(Cu和TiO2)在拉伸片上流动的传热和传质。将控制微分方程转化为一组非线性常微分方程,并使用具有适当边界条件的正则微扰技术对各种物理参数进行求解。用图形描述并详细分析了不同物理参数对无量纲速度、温度和浓度分布的影响。最后,以表格形式给出了物理量的数值,如局部皮肤摩擦系数、努塞尔数和舍伍德数。得出结论:合成速度随着Jeffrey参数和磁场参数的增加而减小。结果表明,随着热辐射的增强,速度和温度减小。随着Soret参数的增加,速度和浓度都有所提高。此外,还注意到溶质边界层厚度随着化学反应参数的增加而减小。这是因为化学反应参数值越高,化学分子扩散率越低。此外,水基TiO2纳米流体比水基Cu纳米流体具有更高的速度。与之前发表的工作和结果进行了比较,结果非常一致。该流体流动模型在化学、聚合物、医学等领域具有多种工业应用。
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来源期刊
Heat Transfer
Heat Transfer THERMODYNAMICS-
CiteScore
6.30
自引率
19.40%
发文量
342
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